EP3420734A1 - Interferometer and method of designing an interferometer - Google Patents
Interferometer and method of designing an interferometerInfo
- Publication number
- EP3420734A1 EP3420734A1 EP17709740.9A EP17709740A EP3420734A1 EP 3420734 A1 EP3420734 A1 EP 3420734A1 EP 17709740 A EP17709740 A EP 17709740A EP 3420734 A1 EP3420734 A1 EP 3420734A1
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- EP
- European Patent Office
- Prior art keywords
- modes
- interferometer
- unitary matrix
- matrix
- transformation
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Classifications
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/10—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type
- G02B6/12—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type of the integrated circuit kind
- G02B6/12007—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings of the optical waveguide type of the integrated circuit kind forming wavelength selective elements, e.g. multiplexer, demultiplexer
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- G—PHYSICS
- G02—OPTICS
- G02F—OPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
- G02F1/00—Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
- G02F1/29—Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the position or the direction of light beams, i.e. deflection
- G02F1/31—Digital deflection, i.e. optical switching
- G02F1/313—Digital deflection, i.e. optical switching in an optical waveguide structure
- G02F1/3136—Digital deflection, i.e. optical switching in an optical waveguide structure of interferometric switch type
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F30/00—Computer-aided design [CAD]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/25—Arrangements specific to fibre transmission
- H04B10/2581—Multimode transmission
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/26—Optical coupling means
- G02B6/28—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
- G02B6/293—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
- G02B6/29344—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by modal interference or beating, i.e. of transverse modes, e.g. zero-gap directional coupler, MMI
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/26—Optical coupling means
- G02B6/28—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
- G02B6/293—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
- G02B6/29346—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means operating by wave or beam interference
- G02B6/2935—Mach-Zehnder configuration, i.e. comprising separate splitting and combining means
- G02B6/29352—Mach-Zehnder configuration, i.e. comprising separate splitting and combining means in a light guide
- G02B6/29355—Cascade arrangement of interferometers
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/26—Optical coupling means
- G02B6/28—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals
- G02B6/293—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means
- G02B6/29379—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means characterised by the function or use of the complete device
- G02B6/29395—Optical coupling means having data bus means, i.e. plural waveguides interconnected and providing an inherently bidirectional system by mixing and splitting signals with wavelength selective means characterised by the function or use of the complete device configurable, e.g. tunable or reconfigurable
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/70—Photonic quantum communication
Definitions
- This invention relates to a method of designing an interferometer for coupling a plurality of modes of electromagnetic radiation, in particular to a method of designing an integrated photonics interferometer.
- Optical systems e.g. integrated photonics interferometers, may be used to manipulate a number of different modes of light to provide desired linear
- Typical photonics interferometers may be implemented on an integrated circuit as a mesh of beam splitters and phase shifters, and designed with an architecture that physically implements the desired multimode interference or transformation.
- the desired multimode transformation (for an N mode interferometer) may be defined first as a unitary (N x N) matrix (for N modes that are to be manipulated by the circuit). This unitary matrix may then be decomposed to a diagonal matrix to obtain parameters that describe the physical interactions between the modes for a given circuit architecture.
- These physical interactions i.e. the individual interferences between the modes of light
- Figure 1 shows a schematic of a layout of an interferometer 10 having five modes. The five modes are input into the interferometer 10 and travel along five separate paths 1 1 , 12, 13, 14, 15.
- the triangular arrangement of the interferometer 10 means that each of the paths 1 1 , 12, 13, 14, 15 crosses each of the other paths 1 1 , 12, 13, 14, 15, such that each of the modes may interact (e.g. be coupled or interfered) with each of the other modes.
- the layout of the interferometer for the Reck decomposition uses the minimum number of crossing points in order to provide interactions for each mode with each of the other modes, it can be seen from the interferometer 10 in Figure 1 , that its layout is not optimal in terms of the physical use of space, i.e. the upper path 15 travels half the length of the interferometer before crossing another path. This results from the method used in the Reck decomposition. It also means that the, e.g. optical, losses and path lengths for different modes are not balanced, which can become a significant problem when the number of modes is large (as is often the case for photonics interferometers), e.g. owing to fabrication
- the aim of the present invention is to provide an improved interferometer for coupling multiple modes of electromagnetic radiation through an improved method of designing an interferometer.
- the invention provides a method of designing an interferometer for coupling a plurality of modes of electromagnetic radiation, the method comprising:
- a plurality of waveguides arranged to pass through the interferometer to connect the N inputs to the N outputs and for carrying the N modes of
- N is a natural number
- the plurality of waveguides are arranged to provide a plurality of crossing points between pairs of the plurality of waveguides such that at each crossing point the two modes of electromagnetic radiation carried by the two respective waveguides are capable of coupling with each other, wherein the plurality of waveguides and the plurality of crossing points are arranged such that each of the N modes of electromagnetic radiation is capable of coupling with each of the other modes of electromagnetic radiation at respective crossing points, and the plurality of waveguides are arranged such that the plurality of crossing points are arranged into N groups along the plurality of waveguides from the inputs to the outputs through the interferometer, wherein each group contains the maximum number of possible crossing points between pairs of waveguides, and wherein the crossing points in each group involve pairs of adjacent waveguides whose paths were not crossed in the previous group of crossing points:
- the transformation matrices used to decompose the unitary matrix each represent the coupling between a pair of modes at a crossing point of a pair of waveguides, and wherein the transformation matrices are arranged to operate on the unitary matrix in an order that matches a sequence in which the crossing points in the interferometer may be arranged;
- the present invention therefore provides a method of designing an interferometer, for an interferometer that is arranged to couple a plurality of modes of
- the interferometer has N inputs and N outputs for inputting and outputting N modes of electromagnetic radiation into and from the interferometer respectively (N is a natural number, greater than or equal to 2).
- the N modes of electromagnetic radiation are carried via a plurality of waveguides between the N inputs and N outputs.
- the layout of the interferometer is such that the plurality of waveguides are arranged to provide crossing points for each of the N modes to couple to each of the other modes, with a pair of modes being coupled at each crossing point.
- a pair of waveguides carries the pair of modes to couple to each other, such that at each crossing point the pair of modes of electromagnetic radiation being carried by the respective pair of waveguides are able to couple (e.g. interact through interference) with each other.
- the layout of the waveguides in the interferometer and the crossing points is such that travelling along the waveguides through the interferometer from the inputs to the outputs, pairs of adjacent waveguides are arranged to cross at N groups of crossing points.
- the maximum number of pairs of waveguides is crossed, provided that none of the pairs of waveguides has been crossed in the previous group (i.e. the adjacent group closer to the input of the interferometer). For example, when N is an odd number, this results in there being ( ⁇ /-1)/2 crossing points in each group. When N is even, this results in there being N/2 crossing points being followed by ⁇ //2-1 crossing points, with this pair of groups being repeated for the N groups.
- the details of the couplings between the pairs of modes of electromagnetic radiation at the respective coupling points need to be determined from the overall desired transformation of the, e.g. N, modes to be performed by the interferometer, to then allow the interferometer to be designed and, e.g., manufactured.
- a unitary matrix describing the desired transformation, e.g. of the N modes from the N inputs to the N outputs, to be implemented by the interferometer is used, e.g. first the unitary matrix is defined according to the desired transformation.
- the method of the present invention includes the steps of receiving this unitary matrix and then decomposing the unitary matrix into a diagonal matrix.
- the unitary matrix is decomposed into a diagonal matrix by operating on it with a plurality of transformation matrices.
- Each of these transformation matrices represents the respective coupling (interaction) between a pair of modes of electromagnetic radiation at a crossing point of a pair of waveguides carrying the modes of electromagnetic radiation (e.g. there is a one-to-one correspondence between the transformation matrices and the couplings at the respective crossing points).
- the transformation matrices are applied to the unitary matrix in an order that matches a sequence in which it is physically possible to arrange the crossing points
- these transformation matrices are then used to determine the necessary coupling between the pair of modes at each crossing point to implement the overall desired transformation of the, e.g. N, modes input into the interferometer, such that these couplings may be used in the design and manufacture of an interferometer that implements this overall desired transformation, i.e. to provide the desired couplings between the, e.g. each of the N modes with each of the other, modes.
- the interferometer may be provided, because it is not necessary for the paths through the interferometer to have a triangular layout such that the modes are interacted in turn (and thus the unitary matrix to be decomposed for one mode after another) as is done when using the Reck decomposition.
- the layout of the interferometer (which may be approximately rectangular) allows multiple pairs modes of electromagnetic radiation (i.e. the maximum number in each group) to be coupled to each other at each step (group) from the input to the output of the interferometer.
- the method of designing the interferometer provides a decomposition of a unitary matrix (describing the desired transformation of the modes of electromagnetic radiation input into the interferometer) that helps to provide an interferometer having an, e.g. optimum, layout, in terms of use of space.
- This layout also provides the opportunity to interact each of the modes with each of the other modes and thus provides flexibility to the designer in terms of the choices of the overall desired transformation to be performed.
- the decomposition also provides information as to how pairs of modes of electromagnetic radiation passing through the interferometer should be interacted, in order to implement the desired overall transformation.
- the "depth" of the paths through the waveguides is N, for N>2. This compares to a depth of 2 ⁇ /-3 for the corresponding layout when using the Reck decomposition, which is greater than N for ⁇ />3.
- interferometer layout for an interferometer having these properties means that, particularly when an interferometer for a large number of modes is to be provided (i.e. when N is large), the interferometer may be provided in up to half the amount of space compared to previous interferometers implementing similar
- the Applicant also considers a universal photonics device (e.g. a photonics device with reconfigurable beam splitters and phase shifters, that is able to couple each of its modes with each of the other modes, such that any desired overall
- the transformation may be implemented by the device) according to this design for implementing a transformation to be novel and inventive in its own right and thus when viewed from a further aspect the invention provides a universal interferometer for coupling a plurality of modes of electromagnetic radiation according to a transformation comprising:
- a plurality of waveguides arranged to pass through the interferometer to connect the N inputs to the N outputs and for carrying the N modes of
- N is a natural number
- the plurality of waveguides are arranged to provide a plurality of crossing points between pairs of the plurality of waveguides, wherein a
- reconfigurable beam splitter arranged to implement a reconfigurable reflectivity and a reconfigurable phase shift is arranged at each of the plurality of crossing points, such that at each reconfigurable beam splitter the two modes of electromagnetic radiation carried by the two respective waveguides to the crossing point are capable of coupling with each other with a reconfigurable reflection coefficient and a reconfigurable phase shift coefficient, wherein the plurality of waveguides and the plurality of crossing points are arranged such that each of the N modes of electromagnetic radiation is capable of coupling with each of the other modes of electromagnetic radiation at respective reconfigurable beam splitters; and
- the plurality of waveguides are arranged such that the plurality of crossing points are arranged into N groups along the plurality of waveguides from the inputs to the outputs through the interferometer, wherein each group contains the maximum number of possible crossing points between pairs of waveguides, and wherein the crossing points in each group involve pairs of adjacent waveguides whose paths were not crossed in the previous group of crossing points; and
- the couplings between the pairs of modes at each of the reconfigurable beam splitters are configured such that the interferometer implements a transformation of the N modes between the N inputs and the N outputs.
- this aspect of the present invention can, and preferably does, include any one or more or all of the preferred and optional features of the present invention discussed herein, as appropriate.
- the interferometer may be configured to couple the modes of any suitable and desired type of electromagnetic radiation.
- one or more (and preferably all) of the inputs, outputs, waveguides and crossing points may be configured to couple the modes of any suitable and desired type of electromagnetic radiation.
- the electromagnetic radiation has a wavelength between 400 nm and 700 nm (i.e.
- the (e.g. optical) interferometer is configured to couple modes of electromagnetic radiation having these wavelengths.
- the electromagnetic radiation (and thus the modes thereof) used to couple using the interferometer has a wavelength of between 700 nm and 1600 nm (and thus the interferometer and its components are preferably configured to couple modes of electromagnetic radiation having these wavelengths).
- Near infrared radiation i.e. between 700 nm and 1600 nm
- has a low loss in silicon which may be used in an integrated photonics circuit
- the design of the interferometer may enable the interferometer to implement a linear transformation for a plurality of input modes.
- any suitable and desired number of modes of electromagnetic radiation may be used with the interferometer, and thus the interferometer may comprise any suitable and desired number of inputs, outputs, waveguides and crossing points, i.e. N may be any suitable and desired number.
- N is greater than 3, e.g. greater than 10, e.g. greater than 50, e.g. greater than 100.
- N (and thus the number of modes) may even be several hundred if not several thousand, as may be desired in a complicated integrated photonics system.
- the interferometer being designed, to couple the, e.g. N, input modes of electromagnetic radiation according to the desired transformation, may be arranged in any suitable and desired way, e.g. the layout of the inputs, waveguides and outputs.
- the interferometer has only ⁇ /( ⁇ /-1)/2 crossing points (and thus preferably the unitary matrix is decomposed using ⁇ /( ⁇ /-1)/2 transformation matrices). It will be appreciated that this is the minimum number of crossing points necessary for each of the N modes input into the interferometer to be capable of coupling with each of the other modes (i.e. only once), using crossing points where two waveguides cross to couple the two respective modes of electromagnetic radiation being carried by the waveguides. This thus helps to minimise the number of, e.g., optical elements that the interferometer is required to have in order to couple the two modes of electromagnetic radiation at each of the crossing points.
- Each group of crossing points of the waveguides in the interferometer contains the maximum number of possible crossing points between pairs of modes.
- N is odd, preferably the number of crossing points in each group is ( ⁇ /-1)/2, with this number being repeated in each group until there are a total of ⁇ /( ⁇ /-1)/2 crossing points, e.g. until all the modes have been crossed with all the other modes.
- N is even, preferably the number of crossing points in each pair of groups is N/2 followed by ⁇ //2-1 (or vice versa), with this number being repeated in each group until there are a total of ⁇ /( ⁇ /-1)/2 crossing points, e.g. until all the modes have been crossed with all the other modes.
- the plurality of waveguides and plurality of crossing points may be configured in any suitable and desired way in order to couple the respective pair of modes of electromagnetic radiation passing therethrough according to the desired overall transformation.
- the path lengths of each of the waveguides between adjacent crossing points are approximately equal. This helps to match the (e.g. optical) losses along each path through the interferometer as mismatched path lengths (and thus losses) may modify the transformation of the modes from the desired transformation.
- the number of crossing points that each mode passes through is approximately equal. This also helps to match the (e.g.
- the crossing points between pairs of modes may each be configured in any suitable and desired way in order to couple the respective pair of modes of electromagnetic radiation passing therethrough, according to the interaction for the pair of modes as determined from the transformation matrices output from the decomposition of the unitary matrix.
- a beam splitter is arranged at each of one or more (and preferably all) of the crossing points, wherein (each of) the beam splitter(s) is arranged to couple the pair of modes at the respective crossing point according to the determined interaction for the crossing point from the respective transformation matrix.
- the transformation matrices that are used to decompose the unitary matrix may take and suitable and desired form.
- the coupling for each of the pairs of modes at each of the plurality of crossing points may be determined from the respective transformation matrices in any suitable and desired way.
- the respective crossing points e.g. the beam splitters and/or phase shifters, may be configured in any suitable and desired way to couple the pairs of modes at the respective crossing points according to the determined coupling for the crossing point from the respective transformation matrices.
- each of the transformation matrices comprises one or more elements that are representative of one (or preferably both) of a reflectivity (or transmission) and a phase shift of the coupling between the pair of modes at the respective crossing point, and thus the coupling for each of the pair of modes may be described by a (relative) reflectivity (i.e. the ratio of the amplitudes of the pair of modes input to a crossing point that are transmitted into the respective pair of modes output from the crossing point) and/or a (relative) phase shift between the pair of modes at the respective crossing point.
- a reflectivity i.e. the ratio of the amplitudes of the pair of modes input to a crossing point that are transmitted into the respective pair of modes output from the crossing point
- a (relative) phase shift between the pair of modes at the respective crossing point i.e. the ratio of the amplitudes of the pair of modes input to a crossing point that are transmitted into the respective pair of modes output from the crossing point
- the method comprises determining a reflectivity coefficient and/or a phase shift coefficient from each of the transformation matrices; determining, using the reflectivity coefficient and the phase shift coefficient, the relative reflectivity and relative phase shift for the coupling of each of the pairs of modes at the respective crossing points for use in designing and manufacturing the interferometer.
- the crossing points e.g. the beam splitters
- the crossing points are preferably each arranged to couple the respective pair of modes according to the determined reflectivity coefficient and/or the determined phase shift coefficient.
- each beam splitter may be configured in any suitable and desired way to couple the respective pair of modes of electromagnetic radiation according to the coupling determined from the respective transformation matrix, e.g. with a particular reflection coefficient and/or a particular phase shift coefficient as determined from the respective transformation matrix.
- the beam splitters could each be designed and manufactured with a fixed reflectivity and/or fixed phase shift, based on the couplings determined from the respective transformation matrices (thus giving a fixed interferometer only able to implement a single transformation).
- each of the beam splitters is adjustable, e.g. reconfigurable. This allows a general purpose interferometer to be provided with the layout as described above, and then the beam splitters can be configured, e.g. programmed (e.g. controlled by processing circuitry), to implement the reflectivity and/or phase shift as determined from the respective transformation matrices.
- each beam splitter comprises a Mach-Zehnder interferometer, e.g. a reconfigurable Mach-Zehnder interferometer (e.g. comprising a thermo-optic phase shifter).
- a Mach-Zehnder interferometer e.g. a reconfigurable Mach-Zehnder interferometer (e.g. comprising a thermo-optic phase shifter).
- each Mach-Zehnder interferometer comprises two 50:50 directional couplers, preceded by a phase shifter at one of the input ports of the Mach-Zehnder interferometer.
- each crossing point e.g. each beam splitter
- the determined reflection coefficient may able to be implemented independently from the determined phase shift coefficient.
- one or more (or all) of the crossing points are arranged to implement the respective determined reflection coefficient separately from the respective determined phase shift coefficient (e.g. in separate components).
- one or more of the crossing points may comprise a beam splitter configured to couple the respective pair of modes with a particular reflection coefficient determined from the respective transformation matrix and a (separate) phase shifter configured to couple the respective pair of modes with a particular phase shift coefficient determined from the respective transformation matrix.
- the interferometer may comprise phase shifters arranged separately from the beam splitters, e.g. between crossing points (before or after the crossing point), wherein each phase shifter is arranged to introduce a phase shift in one mode relative to another mode (preferably the adjacent mode in the interferometer).
- each crossing point may comprise two phase shifters arranged to couple the respective pair of modes with a particular (relative) phase shift coefficient determined from the respective transformation matrix.
- each of the waveguides for the pair of modes may comprise a phase shifter.
- phase shifters may comprise any suitable and desired type of phase shifter.
- the phase shifters comprise thermo-optic phase shifters, e.g. comprising resistors adjacent the respective waveguides.
- each of the phase shifters is adjustable, e.g. reconfigurable.
- the (e.g. adjustable) phase shifters and/or the (e.g. adjustable) beam splitters are computer-controlled.
- the method of designing the interferometer so that it is able to couple a plurality of modes of electromagnetic radiation according to the desired overall transformation will now be described.
- a unitary matrix describing the desired transformation e.g. of the N modes from the N inputs to the N outputs, to be performed by the interferometer.
- the method first comprises the step of defining a unitary matrix describing the desired transformation, e.g. of the N modes from the N inputs to the N outputs, to be performed by the interferometer.
- the unitary matrix may be defined in any suitable and desired way.
- the unitary matrix is defined by an N x N unitary matrix that describes the transformation of the annihilation operators of the N modes of the interferometer that the unitary matrix represents, wherein the annihilation operators and the unitary matrix satisfy the equation:
- each transformation matrix describing the coupling between modes m and n (m ⁇ n), may be expressed as a reflectivity (e.g. in a beam splitter) of cos ⁇ ( ⁇ e [0, ⁇ /2]) and a phase shift (e.g. in a beam splitter or separate phase shifter) of ⁇ ( ⁇ e [0,2 ⁇ ]) at input m.
- each transformation matrix can be written as an N x N matrix which is identity except for the (m,m), (m,n), (n,m) and
- interferometer comprises a transformation of the N modes from the N inputs to the N outputs of the interferometer.
- transformation is a universal transformation.
- the transformation to be performed by the interferometer may comprise a linear transformation.
- a linear transformation may be defined in a unitary matrix (as will be described below), with the unitary matrix then being decomposed according to the method of the present invention.
- the transformation is a linear transformation the number of modes input into the interferometer may not be the same as the number of modes output from the interferometer.
- the maximum of the number of modes input into the interferometer and the number of modes output from the interferometer is N 12 (i.e. N is even when the linear transformation is defined in an NxN unitary matrix).
- N is even when the linear transformation is defined in an NxN unitary matrix.
- a sub-matrix is defined describing the linear ( ⁇ //2 ⁇ N/2) transformation (where N/2 is the maximum of the number of modes input into the interferometer and the number of modes output from the interferometer), wherein the sub-matrix is embedded in an NxN unitary matrix.
- an RxR sub- matrix A may be defined describing the linear transformation (where R is the maximum of P and Q and dummy elements may be added to the matrix A if P and Q are not equal so that the matrix A is square), for embedding in the unitary matrix.
- the matrix A is preferably normalised (such that
- the matrix unitary A may be embedded in the unitary matrix U in any suitable and desired way.
- the unitary matrix U is defined as
- the unitary matrix U may be treated, i.e. decomposed, in the manner described for the other aspects and embodiments of the invention.
- the unitary matrix is operated on by a plurality of transformation matrices to decompose the unitary matrix into a diagonal matrix in any suitable and desired way such that the transformation matrices are arranged to operate on the unitary matrix in an order that matches a sequence in which the crossing points in the interferometer may be arranged.
- the method comprises determining the plurality of transformation matrices to decompose the unitary matrix into a diagonal matrix (wherein the transformation matrices used to decompose the unitary matrix each represent the coupling between a pair of modes at a crossing point of a pair of waveguides, and wherein the transformation matrices are arranged to operate on the unitary matrix in an order that matches a sequence in which the crossing points in the interferometer may be arranged).
- the unitary matrix is preferably decomposed into a product of a plurality of matrices that satisfy
- the physical interferometer preferably comprises a plurality of beam splitters and phase shifters arranged in the ordered configuration determined by S, with the different values of ⁇ and ⁇ as determined by the plurality matrices. (It should be noted that D may
- the sequence in which the transformation matrices are applied to the unitary matrix to effect its decomposition matches a sequence (i.e. an order) in which pairs of adjacent modes (corresponding to the respective transformation matrices that represent the interactions between the respective pairs of modes at the crossing points) may be coupled with each other.
- a sequence i.e. an order
- pairs of adjacent modes corresponding to the respective transformation matrices that represent the interactions between the respective pairs of modes at the crossing points
- transformation matrices may be applied to either side of the unitary matrix. Transformation matrices applied to one side, e.g. the right hand side of the unitary matrix, correspond to crossing the modes working from the input side of the interferometer towards the output side. Transformation matrices applied to the other side, e.g. the left hand side of the unitary matrix, correspond to crossing the modes working from the output side of the interferometer towards the input side.)
- the sequence (or order) in which the unitary matrix is operated on by the transformation matrices may also be described by the effect the operation of each transformation matrix has on the unitary matrix (strictly the effect of each subsequent transformation matrix on the unitary matrix having been operated on by the previous transformation matrices).
- the method comprises operating on the unitary matrix with the plurality of
- transformation matrices wherein the operation of each transformation matrix on the unitary matrix nulls a respective (different) non-diagonal element of the unitary matrix.
- This thus also helps to define the transformation matrices, e.g. the transformation matrix necessary to apply to the unitary matrix at each step in order to null the desired element of the unitary matrix preferably acts on the pair of rows (if a transformation matrix operates on the unitary matrix from the left) or the pair of columns (if a transformation matrix operates on the unitary matrix from the right) that correspond to the pair of modes being coupled.
- the transformation matrix necessary to apply to the unitary matrix at each step in order to null the desired element of the unitary matrix preferably nulls the element corresponding to the breaking of a path between the position of a mode from the input side of the interferometer and the position of a mode from the output side of the interferometer (e.g. once the pair of modes corresponding to the action of the transformation matrix have been crossed (and thus coupled) there is no longer a path (from the input side of the interferometer to the output side) between the modes in the positions corresponding to the element of the unitary matrix that is nulled), given the crossings of the modes already performed by the application of the previous transformation matrices.
- unitary matrix (or the partially decomposed unitary matrix) in order to null an element (k,l) of the unitary matrix (or the partially decomposed unitary matrix) preferably corresponds to the coupling of modes i and j and the breaking of the path between the modes at positions k (towards the output side) and / (towards the input side) of the interferometer.
- the sequence in which the elements of the unitary matrix are nulled may be in any suitable and desired order (corresponding to a sequence in which the crossing points in the interferometer may be arranged).
- the elements of the lower triangle (or alternatively the upper triangle) of the unitary matrix are nulled to decompose the unitary matrix. It will be appreciated that by virtue of its unitarity, once all the elements in the lower or upper triangle of the unitary matrix have been nulled, the unitary matrix has been diagonalised.
- the elements of the lower (or upper) triangle of the unitary matrix are nulled in an order such that a triangle of increasing size of nulled elements (i.e. with the hypotenuse parallel to the main diagonal of the unitary matrix) is formed until the whole of the lower (or upper) triangle has been nulled.
- the triangle of nulled elements initially has one nulled element, then three nulled elements, then six nulled elements, then ten nulled elements, etc., depending on the size of the unitary matrix.
- the initial element nulled in the lower (or upper) triangle of the unitary matrix may be any suitable and desired element.
- the initial element nulled is the bottom left hand corner element in the lower triangle (or the top right hand corner element in the upper triangle) of the unitary matrix.
- a triangle of nulled elements is formed that increases in size towards the main diagonal of the unitary matrix.
- these elements When expanding a triangle of nulled elements in the lower (or upper) triangle of the unitary matrix, these elements may be nulled in any suitable and desired order (corresponding to a sequence in which the crossing points in the interferometer may be arranged) once the first element has been nulled.
- these elements may be nulled in any suitable and desired order (corresponding to a sequence in which the crossing points in the interferometer may be arranged) once the first element has been nulled.
- next element to be nulled is an element adjacent (i.e. in the adjacent row and/or column) the element that has been nulled previously.
- elements are nulled along a diagonal (the hypotenuse of the expanding triangle) in one direction and then along the diagonal (hypotenuse) of the next triangle in the opposite direction.
- the order in which the transformation matrices are applied to the unitary matrix, for an N x N unitary matrix 0 is:
- the order in which the elements of the unitary matrix are nulled and the order in which the transformation matrices are applied to the unitary matrix, for an N x N unitary matrix 0 is:
- the diagonalised matrix may be expressed in the form: where D is the resultant diagonal matrix corresponding to single mode phases, and S L and S R are the respective orderings of the (m,n) indices for the
- the decomposition of the unitary matrix may also be expressed as:
- a matrix may be found such that the
- unitary matrix may be expresse
- the unitary matrix which describes the overall desired transformation of the, e.g. N, modes by the interferometer between its inputs and its outputs, may be decomposed into a diagonal matrix, such that the transformation matrices correspond to couplings between modes at crossing points in the interferometer, in a matching order.
- the input and output modes are labelled differently (such that the unitary matrix to describe the overall transformation may need to be defined differently), then in order for the unitary matrix to be
- the coupling for the pair of modes at each of the plurality of crossing points may be determined, e.g. as outlined above.
- the method comprises the step of outputting the determined couplings for the pairs of modes at each of the plurality of crossing points.
- interferometer This may be suitable when the design of the interferometer is determined in advance of and in a different location to the manufacture of the interferometer.
- the determined couplings may be used in designing and manufacturing the interferometer in any suitable and desired way. For example, when the
- interferometer comprises (re)configurable beam splitters and/or phase shifters preferably the method comprises configuring the beam splitters and/or phase shifters to provide the determined coupling for the pair of modes at each of the plurality of crossing points.
- the method comprises the step of designing and, e.g. manufacturing, the interferometer using the determined couplings for the pair of modes at each of the plurality of crossing points (i.e. to provide an interferometer having the determined couplings for the pair of modes at each of the plurality of crossing points).
- the method comprises the steps of configuring and/or assembling an interferometer using the determined couplings for the pair of modes at each of the plurality of crossing points, e.g. configuring and/or assembling the plurality of crossing points of the interferometer such that they have the respective determined couplings for the pair of modes at each of the plurality of crossing points.
- the interferometer may be designed and manufactured in any suitable and desired way, e.g. depending on the wavelength of the modes of electromagnetic radiation to be transformed by the interferometer.
- the waveguides may comprise optical fibres.
- the interferometer comprises (i.e. is designed and manufactured using) an integrated circuit, with the plurality of waveguides and the plurality of crossing points arranged in the integrated circuit.
- interferometer e.g. designed, configured, manufactured and/or assembled using the method of the invention
- interferometer will generally comprise:
- a plurality of waveguides arranged to pass through the interferometer to connect the N inputs to the N outputs and for carrying the N modes of
- the integrated circuit comprises a semiconductor-based integrated circuit.
- the (e.g. semiconductor-based) integrated circuit may be manufactured from any suitable and desired material, e.g. silicon, lithium niobate, silica, silicon nitride or gallium arsenide.
- the (e.g. semiconductor- based) integrated circuit e.g. a photonics chip
- the interferometer e.g. the integrated circuit
- the interferometer is configured to be compatible for use with optical fibres.
- the N inputs and the N outputs of the interferometer are configured to be connectable to respective optical fibres for carrying the N modes of electromagnetic radiation to the N inputs and from the N outputs.
- the method may be performed in any suitable and desired way and on any suitable and desired platform.
- the method is a computer implemented method, e.g. the steps of the method are performed by processing circuitry.
- the methods in accordance with the present invention may be implemented at least partially using software e.g. computer programs. It will thus be seen that when viewed from further embodiments the present invention provides computer software specifically adapted to carry out the methods herein described when installed on a data processor, a computer program element comprising computer software code portions for performing the methods herein described when the program element is run on a data processor, and a computer program comprising code adapted to perform all the steps of a method or of the methods herein described when the program is run on a data processing system.
- the present invention also extends to a computer software carrier comprising such software arranged to carry out the steps of the methods of the present invention.
- a computer software carrier could be a physical storage medium such as a ROM chip, CD ROM, RAM, flash memory, or disk, or could be a signal such as an electronic signal over wires, an optical signal or a radio signal such as to a satellite or the like.
- the present invention provides computer software and such software installed on a computer software carrier for carrying out at least one of the steps of the methods set out herein.
- the present invention may accordingly suitably be embodied as a computer program product for use with a computer system.
- Such an implementation may comprise a series of computer readable instructions either fixed on a tangible, non- transitory medium, such as a computer readable medium, for example, diskette, CD ROM, ROM, RAM, flash memory, or hard disk.
- the series of computer readable instructions embodies all or part of the
- Such computer readable instructions can be written in a number of programming languages for use with many computer architectures or operating systems. Further, such instructions may be stored using any memory technology, present or future, including but not limited to, semiconductor, magnetic, or optical, or transmitted using any communications technology, present or future, including but not limited to optical, infrared, or microwave. It is contemplated that such a computer program product may be distributed as a removable medium with accompanying printed or electronic documentation, for example, shrink wrapped software, pre-loaded with a computer system, for example, on a system ROM or fixed disk, or distributed from a server or electronic bulletin board over a network, for example, the Internet or World Wide Web. Preferably the invention also extends to an interferometer (e.g.
- an integrated photonics chip designed and manufactured according to the method outlined above, as well as a method of manufacturing an interferometer according to the method outlined above, e.g. including the step of manufacturing the interferometer using the determined couplings for the pairs of modes at each of the plurality of crossing points.
- the method of matrix decomposition outlined above may be suitable not only for decomposing a unitary matrix describing the transformation of modes by an interferometer, but in other complex systems that involve multiple interacting modes for which an overall transformation of the modes is desired to be implemented by couplings between pairs of modes in the system.
- the Applicant envisages that such a method of matrix decomposition may be suitable for use in any quantum system (e.g. trapped ions or superconducting circuits), e.g. that undergoes controllable unitary evolution described by beam splitter-like operations.
- the method may also be suitable for other systems that have multiple inputs and multiple outputs, such as radio technologies and photonic beamformers, both of which require calculations of input-output relations described by matrices similar to those outlined above.
- Photonic circuits corresponding to the above described architecture may also have applications for designing integrated silicon photonic circuits.
- N is a natural number
- the plurality of interaction points are arranged such that each of the
- N modes is capable of coupling with each of the other modes respective interaction points
- the plurality of interaction points are arranged into N groups, wherein each group contains the maximum number of possible interactions points between pairs of modes, and wherein the interaction points in each group involve pairs of adjacent modes that were not interacted in the previous group of interaction points: receiving a unitary matrix describing a desired overall transformation to be performed by the system;
- the transformation matrices used to decompose the unitary matrix each represent the coupling between a pair of modes at an interaction point, and wherein the transformation matrices are arranged to operate on the unitary matrix in an order that matches a sequence in which the interaction points in the system may be arranged;
- this aspect of the present invention can, and preferably does, include any one or more or all of the preferred and optional features of the present invention discussed herein, as appropriate.
- Figure 1 shows a schematic of a layout of an interferometer
- Figure 2 shows a schematic diagram of the layout of an interferometer according to an embodiment of the invention
- Figures 3a-3e show the steps of decomposing a unitary matrix and the corresponding couplings that are introduced between the modes of an
- Figure 4 shows the order in which the matrix elements of the unitary matrix are nulled according to an embodiment of the present invention
- Figure 5 shows a schematic diagram of the layout of an interferometer according to another embodiment of the invention.
- Figure 6 shows the order in which the matrix elements of the unitary matrix are nulled according to another embodiment of the present invention.
- This particular embodiment of the present invention may be useful for interfering modes of light in an JV x W interferometer, where N is the number of modes of light, to produce an arbitrary interference pattern.
- this embodiment of the invention provides a means for determining the reflection coefficients and phase shifts of an interferometer for creating an arbitrary interference pattern.
- Figure 2 shows a schematic diagram of the layout of an interferometer 100 that is arranged to interfere the paths 101 , 102, 103, 104 and 105 of five modes of light along the length of the interferometer.
- the interferometer in Figure 2 includes five inputs and five outputs, the inputs matching one to one with the outputs via five paths through the interferometer.
- the five paths are arranged to carry five respective modes of light through the interferometer along which each mode of light passes through a series of beam splitters.
- the paths 101 , 102, 103, 104 and 105 are arranged to cross each other in the beam splitter at crossing points between two paths such that each mode of light at the input is systematically interfered with every other mode of light by means of the beam splitters.
- the paths and the beam splitters are arranged in the topography shown in Figure 2. For example, a beam splitter is located at position 107, where two paths, 104 and 105, cross and their respective modes are interfered.
- a phase shift is applied before each beam splitter by means of a phase-shifting device to at least one mode of light.
- a minimum of N(N - l)/2 beam splitters are required to interfere all the modes of light in an iV x W interferometer; 10 beam splitters are used in the 5 x 5 interferometer illustrated in Figure 2.
- the interferometer can be used to create any arbitrary interference pattern.
- a desired interference pattern can be converted into a design for the arrangement of: the order of interference of N modes of light in an interferometer; the reflection coefficient applied at each interference point; and the phase shift applied before at the interference point to one or both of the modes of light.
- ⁇ n at input m, with a phase shift, ⁇ at input m, can be written as an N x N matrix which is the identity matrix except for the (m, m), (m, n), (n, m), (n, ri)
- a property of the ) matrices is that for any LI, there are specific values of ⁇
- a further matrix used in the decomposition are matrices represented
- a matrix is the inverse of a matrix is identity except
- matrices represent a physical implementation of a beam splitter of reflectivity
- a given /V-mode interferometer can be represented by an N x N unitary matrix LI that describes the transformation of the annihilation operators of the modes of light by means of the equation where are vectors representing the annihilation operators of all the input and output modes, i.e. LI describes the desired interference pattern to be achieved by the interferometer.
- LI describes the desired interference pattern to be achieved by the interferometer.
- FIG. 3a-3e show the steps of decomposing the unitary matrix LI and the corresponding couplings that are introduced between the modes 101 , 102, 103, 104, 105 of the interferometer 100, 203.
- the matrix LI has been defined, the reflectivity coefficient of each of the beam splitters and the phase shift applied at each phase shifter can be calculated by decomposing LI.
- the decomposition finds, for a given N, that the LI matrix can be written as
- S defines a specific ordered sequence of two-mode transformations and D is a diagonal matric with complex elements with modulus equal to one on the diagonal.
- An interferometer composed of beam splitters and phase shifters in the
- transformation LI can be implemented in an interferometer by phase shifts on all individual modes at the output of the interferometer.
- the unitary matrix decomposition procedure is implemented by consecutively nulling elements of matrices.
- Figure 4 shows the order in
- the numerical value in each element (given in Roman numerals) of the triangle 301 indicates the ordering of the nulling is this embodiment of the invention.
- the first element to be nulled is at the bottom left of the matrix.
- the following elements are then nulled in consecutive diagonals.
- An underlined element in Figure 4 located in row i of the matrix is nulled with a
- An element which is not underlined in Figure 4 is nulled with a matrix.
- each j from 1 to i find a matrix that nulls element
- Equation (1) can be rewritten as
- This decomposition is illustrated in Figures 3a-3e for a 5 x 5 interferometer.
- the decomposition starts with a random 5 x 5 unitary matrix 201 , and a blank interferometer, 203, shown in Figure 3a.
- Elements in the random 5 x 5 unitary matrix 201 are represented by asterisk symbols.
- LI, 201 is a lower triangular matrix, which by virtue of its unitarity is diagonal.
- the sequence of matrices 205 and 201 , given in Figure 3e can be rewritten as Alternative embodiments of the present invention may be presented by relabeling modes in the interferometer or by decomposing the elements in LI in a different order to that presented in Figure 4.
- Figure 5 shows a schematic diagram of the layout of the interferometer 400 that is arranged to interfere the paths 1 , 2, 3, 4 and 5 of five modes of light along the length of the interferometer.
- the interferometer in Figure 5 includes five inputs and five outputs, the inputs matching one to one with the outputs via five paths through the interferometer.
- the five paths are arranged to carry five respective modes of light through the interferometer along which each mode of light passes through a series of beam splitters.
- the paths 1 , 2, 3, 4 and 5 are arranged to cross each other in the beam splitter at crossing points between two paths such that each mode of light is systematically interfered with every other mode of light by means of the beam splitters.
- the paths and the beam splitters are arranged in the topography shown in Figure 5. For example, a beam splitter is located at position 405, where two paths 1 , 4 cross and their respective modes are interfered.
- the dashed ovals 403 help indicate the sequence of beam splitters that correspond to the ordering identified in an embodiment of the invention.
- a phase shift is applied before each beam splitter by means of a phase-shifting device to at least one mode of light.
- a minimum of N(N - l)/2 beam splitters are required to interfere all the modes of light in an iV x W interferometer; 10 beam splitters are used in the 5 x 5 interferometer illustrated in Figure 5.
- the interferometer can be used to create any arbitrary interference pattern.
- a desired interference pattern can be converted into a design for the arrangement of: the order of interference of N modes of light in an interferometer; the reflection coefficient applied at each interference point; and the phase shift applied before at the interference point to one or both of the modes of light.
- a beam splitter having reflectivity cos ⁇ ( ⁇ e [0,2 ⁇ ]) on modes labelled m and n (m ⁇ n ) at output m, with a phase shift, ⁇ , at output m can be written as an N x N matrix ⁇ m n (e, ⁇ ) which is the identity matrix except for the
- a property of the matrices is that for any there are specific values of
- a further matrix used in the decomposition are matrices represented by
- a matrix is the inverse of a matrix are identity
- matrices can null the ⁇ m,n) element of the matrix As with the
- matrices represent a physical implementation of a beam splitter of reflectivity cos ⁇ with a phase shift - ⁇ at input m (as opposed to output m for the
- a given /V-mode interferometer can be represented by an N x N unitary matrix LI that describes the transformation of the annihilation operators of the modes of light by means of the equation where are vectors
- a desired matrix is defined to reflect the desired interference pattern.
- N x N interferometer having N inputs and N outputs. Thereafter, this method will then be applied to the specific example shown in Figure 5.
- each phase shifter can be calculated by decomposing a matrix Decomposing LI into a series of simpler matrices, where each matrix represents a single 2 x 2 beam splitter, allows an N x N interferometer to be described with at most N(N - l)/2 beam splitters with one or two phase shifters associated with each beam splitter.
- the decomposition finds, for a given N, a fixed sequence, S, for which any matrix can be written as
- the decomposition begins by nulling element (N(N + l)/2, (N - l)/2) of if N is odd, or element is even.
- the selected element is nulled by multiplying it by a n matrix on the right with the values of ⁇ and ⁇ selected so as
- the matrix (i,j + 1) is nulled by multiplying (and any previously included matrices) from the left by a
- the coordinates of the nulled element are then used to determine the next coordinate to null, using the selection criteria above.
- the matrix 501 has already been partially-nulled to form a triangle of nulled elements below the diagonal, using the steps outlined above.
- Matrix 503 shows the next steps of nulling the matrix.
- the element immediately below the left-most column 51 of the nulled triangle is nulled first.
- the element immediately below the second left-most column 52 of the nulled triangle is nulled second.
- the element immediately below the third left-most column 53 of the nulled triangle is nulled third.
- the element immediately below the fourth left-most column 54 of the nulled triangle is nulled fourth.
- the elements immediately below all the columns of the nulled-triangle in matrix 501 have now also been nulled.
- the next steps are illustrated in matrix 505.
- the element immediately to the left of the bottom row 55 of the nulled triangle is nulled first.
- the element immediately to the left of the second bottom row 56 of the nulled triangle is nulled second.
- the element immediately to the left of the third bottom row 57 of the nulled triangle is nulled third.
- the element immediately to the left of the fourth bottom row 57 of the nulled triangle is nulled fourth.
- the element immediately to the left of the fifth bottom row 58 of the nulled triangle is nulled fifth.
- the element immediately to the left of the sixth bottom row 59 of the nulled triangle is nulled sixth.
- the nulled triangle is thereby expanded.
- the steps can be continued to null further rows and columns of an N x N matrix.
- S L and S R correspond to the sequences of the beam splitter matrices used the left and right sides of 0, respectively, and D is a diagonal matrix with complex diagonal elements with modulus equal to one. This is equivalent to
- Equation (2) can be rewritte matrices are physically implemented by a phase shift on one mode followed by
- a two-mode beam splitter and the matrices are physically implemented by a
- Equation (3) the interferometer design given by Equation (3) can be implemented with a phase shift in between each beam splitter and at the input and output of the interferometer.
- the interferometer may be physically implemented using phase shifts at only one input of each of the beam splitters.
- the steps noted above to find Equation (2) should initially be followed.
- the (m, n) element of can be nulled by multiplying from the right by
- Equation (5) yields the design for an interferometer with phase shifts at only one input of each of the beam splitters.
- phase shifts at the output of an interferometer are irrelevant.
- D' is physically irrelevant and phase shifts are only required at one input of every beam splitter in the interferometer.
- phase shifts are used at the output of an interferometer.
- D' is physically relevant. This means phase shifts are applied at one input of every beam splitter in the interferometer and after the final stage of beam splitters of the interferometer for each mode of light
- Equation (5) is applied to an odd-numbered N, which yields
- Equation (6) The last term on the first line of Equation (6), is implemented in an
- Equation (6) As will be appreciated by the skilled person, this reasoning can be applied to other terms in Equation (6) as required by the value of N, giving the crossing order between each of the N modes with each of the other N modes.
- interferometer can be designed and manufactured using the couplings determined from these transformation matrices.
- a semiconductor based integrated photonics circuit based interferometer is designed and manufactured having beam splitters arranged at each of the crossing points between the waveguides that carry the modes of light therethrough (e.g. in the arrangement shown in Figures 2-5, which are extendible to any N), with the beam splitters (e.g. Mach-Zehnder interferometers) being configured to have a reflectivity and phase shift as determined from the couplings.
- the beam splitters e.g. Mach-Zehnder interferometers
- phase shifts could be applied before, after or between the beam splitters.
- the nulling process may be started at two different elements in the matrix 0; however the Applicant envisages that the nulling process may start at any suitable element.
- An interferometer can thus be designed for N modes of light according to the desired interference pattern (as defined by the LI matrix). The skilled person will appreciate that this could be applied to any wavelength of electromagnetic waves. The Applicants envisage that the interferometers can in particular be designed for photonic circuits.
- N could take any value over a several orders of magnitude from approximately 10 1 to 10 6 or greater
- modes could be rearranged into any desired order
- phase shifters could be placed between beam splitters, i.e. not integrated therewith
- interferometers manufactured to the design could be manufactured in any suitable and desired way, using any suitable material or materials, such as silica, silicon or lithium niobate.
- the interferometer is manufactured as a silica-on-silicon photonic chip designed to operate at near infrared wavelengths.
- the photonic chip is compatible with optical fibre technology and contains optical waveguides as well as thermo-optic phase shifters.
- the thermo-optic phase shifters comprise resistors placed just above the optical waveguide.
- the photonic chip also contains controllable beam splitters which are implemented by Mach-Zehnder
- thermo-optic phase shifter each contains a thermo-optic phase shifter.
- the phase shifters and variable beam splitters are computer-controlled.
- embodiments of the invention may be used to implement a linear transformation, described by a sub-matrix that is embedded into a unitary matrix.
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| PCT/GB2017/050484 WO2017144895A1 (en) | 2016-02-25 | 2017-02-24 | Interferometer and method of designing an interferometer |
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| KR101639602B1 (en) * | 2011-09-27 | 2016-07-14 | 니폰덴신뎅와 가부시키가이샤 | Optical coupling/splitting device, two-way optical propagation device, and optical transmit-receive system |
| CN102802093B (en) * | 2012-07-11 | 2015-10-07 | 上海大学 | The system of orthogonal frequency division multiplexing passive optical network defencive function and transmission method |
| US10534189B2 (en) * | 2012-11-27 | 2020-01-14 | The Board Of Trustees Of The Leland Stanford Junior University | Universal linear components |
| US8965217B2 (en) * | 2012-12-10 | 2015-02-24 | Corning Incorporated | Superimposing optical transmission modes |
| CA2913007C (en) * | 2013-05-23 | 2021-06-08 | Qubitekk, Inc. | Incorruptible public key using quantum cryptography for secure wired and wireless communications |
| CN103808692B (en) * | 2014-01-20 | 2015-11-11 | 浙江大学 | The strength investigation type sensor of a kind of Mach-Zehnder interferometer and microcavity cascade |
| EP3254134A4 (en) * | 2015-02-04 | 2018-10-17 | Artsys360 Ltd. | Multimodal radar system |
| CN104634256B (en) * | 2015-03-09 | 2017-03-22 | 北京交通大学 | Fiber laser single-wave self-mixing interference displacement measuring system |
| CN104677296A (en) * | 2015-03-09 | 2015-06-03 | 北京交通大学 | System for measurement of displacement through self-mixing interference fusion of beat waves and single waves of fiber laser |
| US10731964B2 (en) * | 2016-11-03 | 2020-08-04 | The Charles Stark Draper Laboratory, Inc. | Photonic imaging array |
-
2016
- 2016-02-25 GB GBGB1603305.2A patent/GB201603305D0/en not_active Ceased
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2017
- 2017-02-24 US US16/080,037 patent/US10641954B2/en active Active
- 2017-02-24 EP EP17709740.9A patent/EP3420734B1/en active Active
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| CN108702556A (en) | 2018-10-23 |
| GB201603305D0 (en) | 2016-04-13 |
| US20190086610A1 (en) | 2019-03-21 |
| CN108702556B (en) | 2021-10-12 |
| EP3420734B1 (en) | 2020-09-09 |
| US20200278494A1 (en) | 2020-09-03 |
| US10871612B2 (en) | 2020-12-22 |
| US10641954B2 (en) | 2020-05-05 |
| WO2017144895A1 (en) | 2017-08-31 |
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